Robust Watermarking on Gradient Boosting Decision Trees
Jun Woo Chung, Yingjie Lao, Weijie Zhao
摘要
Gradient Boosting Decision Trees (GBDTs) are widely used in industry and academia for their high accuracy and efficiency, particularly on structured data. However, the subject of watermarking GBDT models remains underexplored, especially compared to neural networks. In this work, we present the first robust watermarking framework tailored to GBDT models, utilizing in-place fine-tuning to embed imperceptible and resilient watermarks. We propose four embedding strategies, each designed to minimize impact on model accuracy while ensuring watermark robustness. Through experiments across diverse datasets, we demonstrate that our methods achieve high watermark embedding rates, low accuracy degradation, and strong resistance to post-deployment fine-tuning.
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- Turning Your Weakness Into a Strength: Watermarking Deep Neural Networks by BackdooringYossi Adi, Carsten Baum, Moustapha Cissé, Benny Pinkas 等USENIX Security 2018 · 被引用 832 次
- Domain Watermark: Effective and Harmless Dataset Copyright Protection is Closed at HandJunfeng Guo, Yiming Li, Lixu Wang, Shu-Tao Xia 等NeurIPS 2023 · 被引用 93 次
- SketchBoost: Fast Gradient Boosted Decision Tree for Multioutput ProblemsLeonid Iosipoi, Anton VakhrushevNeurIPS 2022 · 被引用 20 次
- Integrity Authentication in Tree ModelsWeijie Zhao, Yingjie Lao, Ping LiKDD 2022 · 被引用 3 次
- Rethinking White-Box Watermarks on Deep Learning Models under Neural Structural ObfuscationYifan Yan, Xudong Pan, Mi Zhang, Min YangUSENIX Security 2023
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